Cargando…

The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes

Monolayer and isotopically labelled bilayer graphene membranes were prepared on grids for transmission electron microscopy (TEM). In order to create defects in the graphene layers in a controlled way, we studied the sensitivity of the individual graphene layers to the oxygen plasma treatment. We tes...

Descripción completa

Detalles Bibliográficos
Autores principales: Guerra, Valentino L. P., Valeš, Václav, Mikšátko, Jiří, Plšek, Jan, Drogowska-Horná, Karolina Anna, Volochanskyi, Oleksandr, Kalbáč, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695737/
https://www.ncbi.nlm.nih.gov/pubmed/35423537
http://dx.doi.org/10.1039/d1ra01249e
_version_ 1784619645152526336
author Guerra, Valentino L. P.
Valeš, Václav
Mikšátko, Jiří
Plšek, Jan
Drogowska-Horná, Karolina Anna
Volochanskyi, Oleksandr
Kalbáč, Martin
author_facet Guerra, Valentino L. P.
Valeš, Václav
Mikšátko, Jiří
Plšek, Jan
Drogowska-Horná, Karolina Anna
Volochanskyi, Oleksandr
Kalbáč, Martin
author_sort Guerra, Valentino L. P.
collection PubMed
description Monolayer and isotopically labelled bilayer graphene membranes were prepared on grids for transmission electron microscopy (TEM). In order to create defects in the graphene layers in a controlled way, we studied the sensitivity of the individual graphene layers to the oxygen plasma treatment. We tested samples with different configurations by varying the order of the transfer of layers and changing the orientation of the samples with respect to the plasma chamber. Using Raman spectroscopy, HRTEM and X-ray photoelectron spectroscopy, we demonstrated defect formation and determined the quantity and chemical composition of the defects. By keeping the sample structure and the setup of the experiment unchanged, the significant role of the sample orientation with respect to the chamber was demonstrated. The effect was accounted for by the variation of the accessibility of the sample surface for the reactive species. Therefore, this effect can be used to control the degree of damage in each layer, resulting in differing numbers of defects present on each side of the sample.
format Online
Article
Text
id pubmed-8695737
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-86957372022-04-13 The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes Guerra, Valentino L. P. Valeš, Václav Mikšátko, Jiří Plšek, Jan Drogowska-Horná, Karolina Anna Volochanskyi, Oleksandr Kalbáč, Martin RSC Adv Chemistry Monolayer and isotopically labelled bilayer graphene membranes were prepared on grids for transmission electron microscopy (TEM). In order to create defects in the graphene layers in a controlled way, we studied the sensitivity of the individual graphene layers to the oxygen plasma treatment. We tested samples with different configurations by varying the order of the transfer of layers and changing the orientation of the samples with respect to the plasma chamber. Using Raman spectroscopy, HRTEM and X-ray photoelectron spectroscopy, we demonstrated defect formation and determined the quantity and chemical composition of the defects. By keeping the sample structure and the setup of the experiment unchanged, the significant role of the sample orientation with respect to the chamber was demonstrated. The effect was accounted for by the variation of the accessibility of the sample surface for the reactive species. Therefore, this effect can be used to control the degree of damage in each layer, resulting in differing numbers of defects present on each side of the sample. The Royal Society of Chemistry 2021-03-10 /pmc/articles/PMC8695737/ /pubmed/35423537 http://dx.doi.org/10.1039/d1ra01249e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Guerra, Valentino L. P.
Valeš, Václav
Mikšátko, Jiří
Plšek, Jan
Drogowska-Horná, Karolina Anna
Volochanskyi, Oleksandr
Kalbáč, Martin
The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
title The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
title_full The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
title_fullStr The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
title_full_unstemmed The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
title_short The use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
title_sort use of sample positioning to control defect creation by oxygen plasma in isotopically labelled bilayer graphene membranes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8695737/
https://www.ncbi.nlm.nih.gov/pubmed/35423537
http://dx.doi.org/10.1039/d1ra01249e
work_keys_str_mv AT guerravalentinolp theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT valesvaclav theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT miksatkojiri theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT plsekjan theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT drogowskahornakarolinaanna theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT volochanskyioleksandr theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT kalbacmartin theuseofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT guerravalentinolp useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT valesvaclav useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT miksatkojiri useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT plsekjan useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT drogowskahornakarolinaanna useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT volochanskyioleksandr useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes
AT kalbacmartin useofsamplepositioningtocontroldefectcreationbyoxygenplasmainisotopicallylabelledbilayergraphenemembranes